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Leveraging the Power of Prediction: Predictive Service Placement for Latency-Sensitive Mobile Edge Computing

机译:利用预测的力量:延迟敏感移动边缘计算的预测服务展示位置

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摘要

Mobile edge computing (MEC) is emerging to support delay-sensitive 5G applications at the edge of mobile networks. When a user moves erratically among multiple MEC nodes, the challenge of how to dynamically migrate its service to maintain service performance (i.e., user-perceived latency) arises. However, frequent service migration can significantly increase operational cost, incurring the conflict between improving performance and reducing cost. To address these mis-aligned objectives, this paper studies the performance optimization of mobile edge service placement under the constraint of long-term cost budget. It is challenging because the budget involves the future uncertain information (e.g., user mobility). To overcome this difficulty, we devote to leveraging the power of prediction and advocate predictive service placement with predicted near-future information. By using two-timescale Lyapunov optimization method, we propose a T-slot predictive service placement (PSP) algorithm to incorporate the prediction of user mobility based on a frame-based design. We characterize the performance bounds of PSP in terms of cost-delay trade-off theoretically. Furthermore, we propose a new weight adjustment scheme for the queue in each frame named PSP-WU to exploit the historical queue information, which greatly reduces the length of queue while improving the quality of user-perceived latency. Rigorous theoretical analysis and extensive evaluations using realistic data traces demonstrate the superior performance of the proposed predictive schemes.
机译:移动边缘计算(MEC)正在出现以支持移动网络边缘的延时敏感5G应用。当用户在多个MEC节点之间不正确移动时,如何产生如何动态地迁移其维护服务性能(即,用户感知等待时间)的挑战。然而,频繁的服务迁移可以显着提高运营成本,在提高性能和降低成本之间产生冲突。为了解决这些错误对齐的目标,本文根据长期成本预算的约束,研究了移动边缘服务安置的性能优化。这是挑战性的,因为预算涉及未来的不确定信息(例如,用户移动性)。为了克服这种困难,我们致力于利用预测的力量,并通过预测的近期信息倡导预测服务展示。通过使用双模Lyapunov优化方法,我们提出了基于基于帧的设计的T字幕预测服务放置(PSP)算法来结合用户移动性的预测。在理论上,我们在成本延迟折价方面表征了PSP的性能范围。此外,我们提出了一个名为PSP-WU的每个帧中的队列的新权重调整方案来利用历史队列信息,这大大降低了队列的长度,同时提高了用户感知延迟的质量。使用现实数据迹线的严格理论分析和广泛的评估展示了所提出的预测方案的卓越性能。

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